Method and apparatus for automatically controlling the operation of a dc power enhancement circuitry connected to an rf power amplifier (PA) that operates at various input signal levels, according to which the instantaneous magnitude of the input signal is sensed and the instantaneous magnitude and its highest (lowest) peak are stored. For the time period during which the peak remains the highest (lowest) peak, the desired dynamic range of the power amplifier is determined according to the peak and a corresponding threshold level and the gain of the enhancement circuitry are determined according for that time period. Whenever the magnitude exceeds the corresponding threshold level, the enhancement circuitry provides to the power amplifier a level of dc power enhancement required for maintaining the output power of the power amplifier within the output dynamic range. Whenever a higher (lower) peak is detected, the process is repeated for the time period during which the lower peak remains the highest (lowest) peak of all preceding peaks and the value of the stored highest (lowest) peak is updated accordingly.
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10. Apparatus for automatically controlling an operation of a dc power enhancement circuitry connected to an rf power amplifier (PA) that operates at various input signal levels, comprising:
a) A detector for continuously sensing an instantaneous magnitude of said input signal and storing said instantaneous magnitude and its lowest peak;
b) A first circuitry for determining the desired dynamic range of said power amplifier according to said peak and for determining a corresponding threshold level and a gain of said enhancement circuitry for a time period during which said peak remains the lowest peak; and
c) A second circuitry for causing, whenever said magnitude exceeds said corresponding threshold level, said enhancement circuitry to provide to said power amplifier a level of dc power enhancement required for maintaining the output power of said power amplifier within said output dynamic range and for updating the value of the stored lowest peak for the time period during which said lower peak remains the lowest peak of all preceding peaks.
9. Apparatus for automatically controlling an operation of a dc power enhancement circuitry connected to an rf power amplifier (PA) that operates at various input signal levels, comprising:
a) A detector for continuously sensing an instantaneous magnitude of said input signal and storing said instantaneous magnitude and its highest peak;
b) A first circuitry for determining the desired dynamic range of said power amplifier according to said peak and for determining a corresponding threshold level and a gain of said enhancement circuitry for a time period during which said peak remains the highest peak; and
c) A second circuitry for causing, whenever said magnitude exceeds said corresponding threshold level, said enhancement circuitry to provide to said power amplifier a level of dc power enhancement required for maintaining the output power of said power amplifier within said output dynamic range and for updating the value of the stored highest peak for the time period during which said higher peak remains the highest peak of all preceding peaks.
2. A method for automatically controlling an operation of a dc power enhancement circuitry connected to an rf power amplifier (PA) that operates at various input signal levels, comprising:
a) Continuously sensing an instantaneous magnitude of said input signal by a coupler, which is followed by a detector and storing said instantaneous magnitude and its lowest peak;
b) For a time period during which said peak remains the lowest peak:
b.1) determining the desired dynamic range of said power amplifier according to said peak;
b.2) determining a corresponding threshold level and a gain of said enhancement circuitry for said time period;
b.3) whenever said magnitude exceeds said corresponding threshold level, causing said enhancement circuitry to provide to said power amplifier a level of dc power enhancement required for maintaining the output power of said power amplifier within said output dynamic range; and
c) whenever a lower peak is detected, repeating steps b.1-b.3) above for the time period during which said lower peak remains the lowest peak of all preceding peaks and updating the value of the stored lowest peak accordingly.
1. A method for automatically controlling an operation of a dc power enhancement circuitry connected to an rf power amplifier (PA) that operates at various input signal levels, comprising:
a) Continuously sensing an instantaneous magnitude of said input signal by a coupler, which is followed by a detector and storing said instantaneous magnitude and its highest peak;
b) For a time period during which said peak remains the highest peak:
b.1) determining the desired dynamic range of said power amplifier according to said peak;
b.2) determining a corresponding threshold level and a gain of said enhancement circuitry for said time period;
b.3) whenever said magnitude exceeds said corresponding threshold level, causing said enhancement circuitry to provide to said power amplifier a level of dc power enhancement required for maintaining the output power of said power amplifier within said output dynamic range; and
c) whenever a higher peak is detected, repeating steps b.1-b.3) above for the time period during which said higher peak remains the highest peak of all preceding peaks and updating the value of the stored highest peak accordingly.
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The present invention relates to the field of high efficiency power amplifiers. More particularly, the invention relates to a control circuitry for dynamically determining the operating point of a circuitry used to enhance the DC power feeding to a power amplifier.
Conventional RF amplifiers required to simultaneously amplify RF signals that have large peak-to-average ratios, are costly and relatively inefficient (i.e., consume much DC power). However, during most of the time, the power output is only a small fraction of the power consumed from the Direct Current (DC) power supply, resulting in low efficiency. The reason for such inefficiency is that on one hand, the DC conditions should be set to values that will be able to provide large power output, but on the other hand, for these DC conditions, such a power amplifier becomes efficient only during the occurrence of the peaks, i.e., when the instantaneous power output is large and the power amplifier is at saturation level.
In many wireless applications, controlling output power as a function of receiving level is required. Using back off from saturation level will reduce efficiency. Conventional power stages are designed to handle the highest power, leading to lower efficiency at lower output power.
A conventional technique for eliminating this problem is to control the DC supply of the power amplifier as a function of power level. One voltage level is supplied to such power amplifier whenever the transmitted power is below a given level (normal operating condition), and an enhanced (and higher) voltage level whenever the output power is above said level. The technique of eXcess eNvelope eNhancement (XNN®) for power amplifiers (PAs), particular for the low power WiFi and WiMAX market applications is disclosed in U.S. Pat. No. 6,437,641. This technique is a simplification of Envelope Tracking (ET), which is disclosed in US 2004/0018821.
The Voltage Enhancement Circuit (VEC™), disclosed in U.S. Pat. No. 6,831,519, modulates the supply voltage of power amplifiers as part of the XNN® technique. Appropriate modulation of the supply voltage prevents saturation of the power amplifier, while amplifying signals that exceed a pre-defined (fixed) programmable threshold. The resulting input drive to the PA is increased, thereby pushing its output well into saturation and eliminates the problem of signal clipping by instantaneously enhancing the power supply voltage.
The methods described above provided solutions only to the problem of improving the efficiency of power amplifiers operated under large peak-to-average ratios, while eliminating the need for clipping signals having large peak amplitudes. The XNN® technology suggests dynamically boosting the drain voltage of the PA to enlarge the output dynamic range of the PA.
All the methods described above have not yet provided satisfactory solutions to the problem of automatically controlling the XNN® enhancement threshold level while operating at various input levels and in a changing environment, in which the supply voltage, the temperature and other varying parameters affect the RF level monitored by the XNN® circuit.
It is therefore an object of the present invention to provide a method and apparatus for automatically controlling the XNN® enhancement threshold level, while operating at various input levels.
It is another object of the present invention to provide a method and apparatus for automatically controlling the XNN® enhancement operation with power amplifiers to be adjusted for different power amplifiers and different input signals.
It is a further object of the present invention to provide a method and apparatus to improve the enhancement operation of XNN® circuits/chips (integrated circuits) compared to XNN® chips with fixed threshold level.
It is yet another object of the present invention to provide a method and apparatus to compensate the enhancement operation of XNN® chips against gain variations in the power amplifier and against variations between XNN® chips during manufacturing.
Other objects and advantages of the invention will become apparent as the description proceeds.
The present invention is directed to a method for automatically controlling the operation of a DC power enhancement circuitry connected to an RF power amplifier (PA) that operates at various input signal levels. The instantaneous magnitude of the input signal is sensed and the instantaneous magnitude and its highest (lowest) peak are stored. For the time period during which the peak remains the highest (lowest) peak, the desired dynamic range of the power amplifier is determined according to the peak and a corresponding threshold level and the gain of the enhancement circuitry are determined according for that time period. Whenever the magnitude exceeds the corresponding threshold level, the enhancement circuitry provides to the power amplifier a level of DC power enhancement required for maintaining the output power of the power amplifier within the output dynamic range. Whenever a higher (lower) peak is detected, the process is repeated for the time period during which the lower peak remains the highest (lowest) peak of all preceding peaks and the value of the stored highest (lowest) peak is updated accordingly.
The present invention is also directed to an apparatus for automatically controlling the operation of a DC power enhancement circuitry connected to an RF power amplifier (PA) that operates at various input signal levels, that comprises:
The above and other characteristics and advantages of the invention will be better understood through the following illustrative and non-limitative detailed description of preferred embodiments thereof, with reference to the appended drawings, wherein:
The present invention proposes a method for automatically controlling the XNN® circuit by monitoring the input envelope level and dynamically determining the threshold levels required to start the enhancement provided by the XNN® circuitry. This way, the operation of the XNN® circuitry is automatically controlled.
The solution proposed by the present invention allows automatically tracking the magnitude of the input signal and setting the threshold level required for obtaining the required output dynamic range for that magnitude. This feature is used to compensate gain variations between different power amplifiers, as well as performance variations between XNN® chips variations during their manufacturing process.
Automatic tracking may also occur in the opposite case (if the peak voltage decreases) in order to lower the threshold. The output dynamic range is defined by the input level of the envelope that will be amplified by the XNN circuitry and its driver, as the drain voltage boosting signal. This means that the described system not only sets the output dynamic range (by setting the threshold level) but also sets the gain needed in the XNN circuitry.
The above examples and description have of course been provided only for the purpose of illustration, and are not intended to limit the invention in any way. As will be appreciated by the skilled person, the invention can be carried out in a great variety of ways, employing more than one technique from those described above, all without exceeding the scope of the invention.
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